Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I'm getting an error on line :

case Sum(l, r) => printExpr(l); print("+"); printExpr(r)

error is :

recursive method printExpr needs result type

This code looks ok to me, what am I doing wrong ?

abstract class Expr {

  case class Num(n: Int) extends Expr
  case class Sum(l: Expr , r: Expr) extends Expr
  case class Prod(l: Expr, r: Expr) extends Expr

  def evalExpr(e: Expr): Int = e match {
    case Num(n) => n
    case Sum(l, r) => evalExpr(l) + evalExpr(r)
    case Prod(l, r) => evalExpr(l) * evalExpr(r)
  }

  def printExpr(e: Expr) = e match {
    case Num(n) => print(" " + n + " ")
    case Sum(l, r) => printExpr(l); print("+"); printExpr(r)
    case Prod(l, r) => printExpr(l); print("x"); printExpr(r)
  }
}
share|improve this question

3 Answers 3

up vote 7 down vote accepted

Recursive methods in Scala need an explicitly stated return type, as the error message states.

The reason is that Scala infers the method's return type from the types used in the method body. When the method's return type affects the types used in the method body (because it calls itself recursively), Scala isn't able to figure out what type it should assign to the method, so it requires that you do so in the source code (as you have with evalExpr, where you explicitly said that it returns an Int).

In this case, you want printExpr to have return type Unit, which is the type of uninteresting values with no information. Usually calling a method with return type Unit is only done for its side effects (such as print).

So you can change the header line of printExpr to:

def printExpr(e: Expr) : Unit = e match {

Alternatively, Scala has some syntactic sugar for declaring "procedures". You can think of a "procedure" as not returning anything, and just executing some code, but really every method in Scala returns something; "procedures" are just methods that return type Unit. The syntax for doing so is to omit the = after the method's header, but then you must surround the method body with curly braces (even if it's a single expression, like your match). So you could do:

def printExpr(e: Expr) {
  e match {
    ...
  }
}

to avoid explicitly declaring Unit.

share|improve this answer

Scala compile cant infer types for recursive methods, so you must declare it explicitly:

def printExpr(e: Expr): Unit = e match {
share|improve this answer

Give a return type to printExpr(e : Expr) like String or Expr for example

printExpr(e : Expr): Expr
printExpr(e : Expr): String
share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.